Tuesday, February 22, 2011

Tram Information


Tram

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This article is about public transport vehicles running on rails. For other uses of "tram", see Tram (disambiguation).
"Streetcar" redirects here. For other uses, see Streetcar (disambiguation).
Czech Tatra T3 - 14,113 units sold worldwide make it the most successful type of tram.
Three rail tracks 350.jpg

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A tram or tramcar in most forms of English, referred to as streetcar or trolley car in North American English, is a rail vehicle which—at least in parts of its route—runs on tracks in streets. It may also run between cities and/or towns (interurbans, tram-train), and/or partially grade separated even in the cities (light rail or light rapid transit). Trams are designed for the transport of passengers and (very occasionally) freight.
Trams are usually lighter and shorter than conventional trains and rapid transit trains. However, the differences between these modes of public transportation are confusing. Some trams (for instance Tram-Trains) may also run on ordinary railway tracks, a tramway may be upgraded to a light rail or a rapid transit line, two urban tramways may be united to an interurban, etc.
Most trams today use electrical power, usually fed by a pantograph; in some cases by a third rail or trolley pole. If necessary, they may have several power systems. Certain types of cable car are also known as trams. Another power source is diesel; a few trams use electricity in the streets and diesel in more rural environments. Also steam and petrol (gasoline) have been used. Horse and mule driven trams do still occur.
Tramways are now included in the wider term "light rail", which also includes segregated systems. Some systems have both segregated and street-running sections, but are usually then referred to as trams, because it is the equipment for street-running which tends to be the decisive factor. Vehicles on wholly segregated light rail systems are generally called trains, although cases have been known of "trains" built for a segregated system being sold to new owners and becoming "trams".
A tram used on Tramlink Route 3 of the Croydon Tramlink owned by TfL in London
A tram in Helsinki, Finland

Contents

[edit] Etymology and terminology

Old tram stop on-demand notifier
The terms tram and tramway were originally (ca. 1500) Scottish words for the type of truck used in coal mines and the tracks on which they ran, probably derived from Middle Flemish tram "beam, handle of a barrow, bar, rung", a North Sea Germanic word of unknown origin meaning the beam or shaft of a barrow or sledge, also the barrow itself. Tram-car is attested from 1873.[1]
Although tram and tramway have been adopted by many languages, they are not used universally in English, North Americans preferring trolley, trolleycar or streetcar. The term streetcar is first recorded in 1840. When electrification came, Americans began to speak of trolleycars or later, trolleys, believed to derive from the troller, a four-wheeled device that was dragged along dual overhead wires by a cable that connected the troller to the top of the car and collected electrical power from the overhead wires, sometimes simply strung, sometimes on a catenary.[2] The trolley pole, which supplanted the troller early on, is fitted to the top of the car and is spring-loaded in order to keep the trolley wheel or skate, at the top of the pole, firmly in contact with the overhead wire. The terms trolley pole and trolley wheel both derive from the troller.[3] Trams using trolley-pole current collection are normally powered through a single pole, grounded through the wheels and rails. The motor circuit is designed to allow electrical current to flow through the underframe.
Although this use of "trolley" for tram was not adopted in Europe, the term did appear with "trolleybus": a rubber-tyred vehicle without tracks which draws its power from overhead wires.
Modern trolley cars often use a metal shoe with a carbon insert instead of a trolley wheel, or have a pantograph. In North America, trams are sometimes called trolleys, even though strictly this may be incorrect: for example, cable cars, or conduit cars that draw power from an underground supply.
Tourist buses made to look like streetcars are sometimes called trolleys in the U.S. (tourist trolley). Open, low-speed segmented vehicles on rubber tires, generally used to ferry tourists short distances, can be called trams, for example on the Universal Studios backlot tour.
Electric buses, which use twin trolley poles (one for live current, one for return) but have wheels with tyres rolling on a hard surface rather than tracks, are called trolleybuses, trackless trolleys (particularly in the Northeastern U.S.), or sometimes (in the UK, as well as in Seattle and Vancouver) simply trolleys.

[edit] History

Main article: History of trams
Renovated Tatra K2 in Sarajevo
Trams in Alexandria, Egypt (since 1860)
The very first tram was on the Swansea and Mumbles Railway in south Wales, UK; it was horse-drawn at first, and later moved by steam and electric power. The Mumbles Railway Act was passed by the British Parliament in 1804, and the first passenger railway (similar to streetcars in the US some 30 years later) started operating in 1807.[4] The first streetcars, also known as horsecars in North America, were built in the United States and developed from city stagecoach lines and omnibus lines that picked up and dropped off passengers on a regular route without the need to be pre-hired. These trams were an animal railway, usually using teams of horses and sometimes mules to haul the cars, usually two as a team. Occasionally other animals were put to use, or humans in emergencies. The first streetcar line, developed by Irish-American John Stephenson, was the New York and Harlem Railroad's Fourth Avenue Line which ran along the Bowery and Fourth Avenue in New York City. Service began in 1832.[5] It was followed in 1835 by New Orleans, Louisiana, which has the oldest continuously operating street railway system in the world, according to the American Society of Mechanical Engineers.[6]
In 1883, Magnus Volk constructed his 2 feet (610 mm) gauge Volk's Electric Railway along the eastern seafront at Brighton, England. This two kilometer line, re-gauged to 2 feet 9 inches (840 mm) in 1884, remains in service to this day, and is the oldest operating electric tramway in the world. The first tram for permanent service with overhead lines was the Mödling and Hinterbrühl Tram in Austria. It started operating in October 1883, but was closed down in 1932.
The first electric street tramway in Britain, the Blackpool Tramway, was opened on 29 September 1885 using conduit collection along Blackpool Promenade. Since the closure of the Glasgow Corporation Tramways in 1962, this has been the only first-generation operational tramway in the UK.
Electric trams have run in Budapest since 1887, and this first line has now grown to be the busiest tram line of Europe, with the tram cars following each other at an interval of 60 seconds at rush hour. Bucharest and Belgrade[7] ran a regular service from 1894 and Sarajevo from 1885.[8][9][10]

[edit] Types of propulsion

[edit] Horse-drawn

A horse tramway in Danzig (now Gdańsk) in the late 19th century
Horse-drawn trams in Calcutta (now Kolkata), India—Life size model at City Centre arcade
Main article: Horsecar
These early forms of public transport developed out of industrial haulage routes or from the omnibus that first ran on public streets in the 1820s, using the newly invented iron or steel rail or 'tramway'. These were local versions of the stagecoach lines and picked up and dropped off passengers on a regular route, without the need to be pre-hired. Horsecars on tramlines were an improvement over the omnibus as the low rolling resistance of metal wheels on iron or steel rails (usually grooved from 1852 on), allowed the animals to haul a greater load for a given effort than the omnibus and gave a smoother ride. The horse-drawn streetcar combined the low cost, flexibility, and safety of animal power with the efficiency, smoothness, and all-weather capability of a rail right-of-way.

[edit] Steam

Main article: Tram engine
Steam trams in Rockhampton, Queensland—note the small boiler at the front of the leading tram
The first mechanical trams were powered by steam. Generally, there were two types of steam tram. The first and most common had a small steam locomotive (called a tram engine in the UK) at the head of a line of one or more carriages, similar to a small train. Systems with such steam trams included Christchurch, New Zealand; Sydney, Australia; other city systems in New South Wales; Munich, Germany (from august 1883 on).[11] Steam tramways also were used on the suburban tramway lines around Milan; the last Gamba de Legn tramway ("Peg-Leg" in Milanese) ran on the Milan-Magenta-Castano Primo route in late 1958.
The other style of steam tram had the steam engine in the body of the tram, referred to as a tram engine or steam dummy. The most notable system to adopt such trams was in Paris. French-designed steam trams also operated in Rockhampton, in the Australian state of Queensland between 1909 and 1939. Stockholm, Sweden, had a steam tram line at the island of Södermalm between 1887 and 1901. A major drawback of this style of tram was the limited space for the engine, so that these trams were usually underpowered.

[edit] Cable-pulled

Main article: Cable car (railway)
The next type of tram was the cable car, which sought to reduce labour costs and the hardship on animals. Cable cars are pulled along the track by a continuously moving cable running at a constant speed that individual cars grip and release to stop and start. The power to move the cable is provided at a site away from the actual operation. The first cable car line in the United States was tested in San Francisco, California, in 1873. The second city to operate cable trams was Dunedin in New Zealand, from 1881 to 1957. In Dresden, Germany, in 1901 an elevated suspended cable car following the Eugen Langen one-railed floating tram system started operating.
Cable Cars operated on Highgate Hill in North London and Kennington to Brixton Hill In South London.
They also worked around "Upper Douglas" in the Isle of Man, Cable Car 72/73 being the sole survivor of the fleet.
Cable cars suffered from high infrastructure costs, since an expensive system of cables, pulleys, stationary engines and vault structures between the rails had to be provided. They also require strength and skill to operate, to avoid obstructions and other cable cars. The cable had to be dropped at particular locations and the cars coast, for example when crossing another cable line. Breaks and frays in the cable, which occurred frequently, required the complete cessation of services over a cable route, while the cable was repaired. After the development of electrically powered trams, the more costly cable car systems declined rapidly.
Cable cars were especially effective in hilly cities, because the cable laid in the tracks physically pulled the car up the hill at a strong, steady pace, as opposed to the low-powered steam dummies trying to chug up a hill at almost a crawl, or worse a horse-drawn trolley trying to pull a load up a hill.
This concept partially explains their survival in San Francisco. However, the most extensive cable system in the U.S. was in Chicago, a much flatter city. The largest cable system in the world, in the city of Melbourne, Victoria, Australia, had at its peak 592 trams running on 74 kilometres of track.
The San Francisco cable cars, though significantly reduced in number, continue to perform a regular transportation function, in addition to being a tourist attraction. A single line also survives in Wellington, New Zealand (rebuilt in 1979 as a funicular but still called the "Wellington Cable Car").

[edit] Hybrid funicular

Former second generation cable tractor, used between 1978 and 2005, assisting a tramcar on the cable section of the Opicina Tramway.
The Opicina Tramway in Trieste operates a hybrid funicular system where the trams are pushed uphill by cable tractors.

[edit] Electric (trolley cars)

Main article: Trolley Car
Fully restored 1920 Toronto streetcar
Old tram in Kiev, Ukraine
Electric trams in Sydney, Australia, circa 1920s
Multiple functioning experimental electric trams were exhibited at the 1884 World Cotton Centennial World's Fair in New Orleans, Louisiana, but they were not deemed good enough to replace the Lamm fireless engines then propelling the St. Charles Avenue Streetcar in that city.
Electric trams (trolley cars) were first successfully installed in Saint Petersburg, Russia, invented and tested by Fyodor Pirotsky as early as 1880, and in Berlin in 1881 by Werner von Siemens and the company that still bears his name. Another was by John Joseph Wright, brother of the famous mining entrepreneur Whitaker Wright, in Toronto in 1883. Earlier installations proved difficult or unreliable. Siemens' line, for example, provided power through a live rail and a return rail, like a model train, limiting the voltage that could be used, and providing electric shocks to people and animals crossing the tracks.[12] Siemens later designed his own method of current collection, from an overhead wire, called the bow collector, and Thorold, Ontario, opened in 1887, and was considered quite successful at the time. While this line proved quite versatile as one of the earliest fully functional electric streetcar installations, it required horse-drawn support while climbing the Niagara Escarpment and for two months of the winter when hydroelectricity was not available. It continued in service in its original form into the 1950s. Electric trams were first tested in service in the United States in Richmond, Virginia, in 1888, in the Richmond Union Passenger Railway built by Frank J. Sprague, though the first commercial installation of an electric streetcar in the United States was built in 1884 in Cleveland, Ohio and operated for a period of one year by the East Cleveland Street Railway Company.[13] In 1904 the first double-decker tram in the world was put into operation in Hong Kong, and the Hong Kong Tramway still remains the only tramway in the world that uses exclusively double-decker trams.

[edit] Other power sources

The only petrol-driven tram of Stockholms Spårvägar, on line 19 in the 1920s
In some places, other forms of power were used to power the tram. Hastings and some other tramways, for example Stockholms Spårvägar in Sweden and some lines in Karachi, used petrol trams and Lytham St Annes used gas trams. Paris operated trams that were powered by compressed air using the Mekarski system. In New York City some minor lines used storage batteries; a longer battery-operated tramway line ran from Milan to Bergamo (about 60 km) during the 1950s.
Galveston Island Trolley in Texas operates diesel trams due to the city's hurricane-prone location, which would result in frequent damage to an electrical supply system.

[edit] Design

[edit] Low floor

For more details on this topic, see Low-floor tram.
Entirely low-floor Škoda ForCity in Prague
The latest generation of light rail vehicles is of partial or fully low-floor design, with the floor 300 to 360 mm (11.8 to 14.2 in) above top of rail, a capability not found in older vehicles. This allows them to load passengers, including those in wheelchairs, directly from low-rise platforms that are not much more than raised footpaths/sidewalks. This satisfies requirements to provide access to disabled passengers without using expensive wheelchair lifts, while at the same time making boarding faster and easier for other passengers.
Two Trams in Braunschweig, Germany. The left one is an 1981 high-floor tram, the right one a 2007 low-floor
Various companies have developed particular low-floor designs, varying from part-low-floor (with internal steps between the low-floor section and the high-floor sections over the bogies), e.g. Citytram[14] and Siemens S70, to 100% low-floor, where the floor passes through a corridor between the drive wheels, thus maintaining a relatively constant (stepless) level from end to end of the tram. However, prior to the introduction of the Škoda ForCity,[citation needed] this carried the mechanical penalty of requiring bogies to be fixed and unable to pivot (except for less than 5 degrees in some trams). This creates undue wear on the tracks and wheels. However, passengers appreciate the ease of boarding and alighting from low-floor trams and moving about inside 100% low-floor trams. Passenger satisfaction with low-floor trams is high.[15] Low-floor trams are now running in many cities around the world, including Milan, Dublin, Prague, Riga, Melbourne, Hiroshima, Houston, Vienna, Istanbul and Strasbourg.

[edit] Articulated

Articulated tram in Barcelona
Articulated trams, invented and first used by the Boston Elevated Railway in 1912-13[16] at a total length of about twelve meters long (40 ft) for each pioneering example of twin-section articulated tram car, have two or more body sections, connected by flexible joints and a round platform at their pivoting midsection(s). Like articulated buses, they have increased passenger capacity. In practice, these trams can be up to 53 metres (174 ft) long[17] (such as in Budapest, Hungary),[18] while a regular tram has to be much shorter. With this type, the articulation is normally suspended between carbody sections. In the Škoda ForCity, which is the world's first 100% low floor tram with pivoting bogies, a Jacobs bogie supports the articulation between the two or more carbody sections. An articulated tram may be low-floor variety or high (regular) floor variety. Newer model trams may be up to 72 meters long and carry 510 passengers at a comfortable 4 passengers/m2. At crush loadings this would be even higher.[19]

[edit] Double decker

Double decker trams operate in Alexandria, Blackpool and Hong Kong.

[edit] Tram-train

Main article: Tram-train
Tram-train operation uses vehicles such as the Flexity Link and Regio-Citadis, which are suited for use on urban tram lines and also meet the necessary indication, power, and strength requirements for operation on main-line railways. This allows passengers to travel from suburban areas into city-centre destinations without having to change from a train to a tram.
It has been primarily developed in Germanic countries, in particular Germany and Switzerland. Karlsruhe is a notable pioneer of the tram-train.

[edit] Cargo trams

CarGoTram run by Volkswagen in Dresden, Germany on a section of grassed track. It delivers parts to the Transparent Factory.
Goods have been carried on rail vehicles through the streets, particularly near docks and steelworks, since the 19th century (most evident on the Weymouth Harbour Tramway in Weymouth, Dorset[20]), and some Belgian vicinal tramway routes were used to haul timber. Several of the US interurbans carried freight. At the turn of the 21st century, a new interest has arisen in using urban tramway systems to transport goods. The motivation now is to reduce air pollution, traffic congestion and damage to road surfaces in city centres. Dresden has a regular CarGoTram service, run by the world's longest tram trainsets (59.4 metres (195 ft)), carrying car parts across the city centre to its Volkswagen factory.[21] Vienna and Zürich use trams as mobile recycling depots. Kislovodsk had a freight-only tram system comprising one line which was used exclusively to deliver bottled Narzan mineral water to the railway station.[22]
In the spring of 2007, Amsterdam piloted a cargo tram operation, aiming to reduce particulate pollution by 20% by halving the number of lorries—currently 5,000—unloading in the inner city during the permitted timeframe from 07:00 till 10:30. The pilot, operated by City Cargo Amsterdam, involved two cargo trams, operating from a distribution centre and delivering to a "hub" where electric trucks delivered to the final destination.
The trial was successful, releasing an intended investment of €100 million in a fleet of 52 cargo trams distributing from four peripheral "cross docks" to 15 inner-city hubs by 2012. These specially built vehicles would be 30 feet (9.1 m) long with 12 axles and a payload of 30 tons. On weekdays, trams are planned to make 4 deliveries per hour between 7 a.m. and 11 a.m. and two per hour between 11 a.m. and 11 p.m. With each unloading operation taking on average 10 minutes, this means that each site would be active for 40 minutes out of each hour during the morning rush hour. In early 2009 the scheme was suspended owing to the financial crisis impeding fund-raising.[23]

[edit] Hearse-tram

Specially appointed hearse trams were used for funerals in Milan, Italy, from the 1880s (initially horse-drawn) to the 1920s. The main cemeteries, Cimitero Monumentale and Cimitero Maggiore, included funeral tram stations. Additional funeral stations were located at Piazza Firenze and at Porta Romana.[24]
In the mid-1940s at least one special hearse tram was used in Turin, Italy. It was introduced due to the wartime shortage of automotive fuel.[25]

[edit] Tramway operation

There are two main types of Tramways, the classic tramway build in the early 20th century with the tram system operating in mixed traffic and the latter type which is most often associated with the tram system having it own right of way. Tram systems that have their own right of way are often call Light Rail but this does not always hold true. Though these two systems have difference in their operation their equipment is much the same.
Infrastructure and equipment
Tram stop
Main article: Tram stop
Controls
Main article: Tram controls
Track
Main article: Tramway track
Power supply

[edit] Tram and light-rail transit systems around the world

Double-decker trams continue to run in Hong Kong.
Old tram in Milan, Italy.
Throughout the world there are many tram systems; some dating from the late 19th or early 20th centuries. However a large number of the old systems were closed during the mid-20th century because of such perceived drawbacks as route inflexibility and maintenance expense. This was especially the case in North American, British, French and other West European cities. Some traditional tram systems did however survive and remain operating much as when first built over a century ago. In the past twenty years their numbers have been augmented by modern tramway or light rail systems in cities that had discarded this form of transport.

[edit] Popularity

Tramways with tramcars (British English) or street railways with streetcars (American English) were common throughout the industrialised world in the late 19th and early 20th centuries but they had disappeared from most British, Canadian, French and U.S. cities by the mid-20th century.[26]
By contrast, trams in parts of continental Europe continued to be used by many cities, although there were contractions in some countries, including the Netherlands.[27]
Since 1980 trams have returned to favour in many places, partly because their tendency to dominate the highway, formerly seen as a disadvantage, is now considered to be a merit. New systems have been built in the United States, Great Britain, Ireland, France and many other countries.

[edit] Largest tram systems

The Silesian Interurbans in Poland and the Trams in Melbourne, Australia, are claimed to be the largest tram networks in the world. Before its decline the BVG in Berlin operated a very large network with 634 km of route. During a period in the 1980s the world's largest tram system was in Leningrad, USSR, being included in Guinness World Records.
The largest single tram line in the world is the Belgian Coast tram, whichs runs almost the entire length of the Belgian coast. Other large systems include (but not limited to) Vienna, Leipzig, Prague, Kiev, Warsaw, Amsterdam, Brussels,Basel, Zurich, Bucharest and Toronto.
Until the system started to be converted to trolleybus (and later bus) in the 1930s, the first-generation London network was also one of the world's largest, with 526 km (327 mi) of route in 1934.[28] While the largest streetcar network in the world used to be located in Chicago, with over 850 kilometres (530 mi) of track,[29] all of it was converted to bus service by the late 1950s.

[edit] Asia

Toyama Centram, Japan
Main article: Trams in Asia
Tram running on Kolkata Road, India
Tramway systems were well established in the Asian region at the start of the 20th century, but started a steady decline during the mid to late 30s. The 1960s marked the end of its dominance in public transportation with most major systems closed and the equipment and rails sold for scrap; however, some extensive original lines still remain in service in Hong Kong and Japan. In recent years there has been renewed interest in the tram with modern systems being built in Japan, the Philippines, and South Korea.
The first Japanese tram line was inaugurated in 1895 as the Kyoto Electric Railroad. The tram reached its zenith in 1932 when 82 rail companies operated 1,479 kilometers of track in 65 cities. The tram declined in popularity through the remaining years of the 30s, a trend that was accelerated by the damages of the War and continued through the Occupation and rebuilding years. During the 1960s many of the remaining operational tramways were shut down and dismantled in favor of auto, bus, and rapid rail service; however, when one compares the number of operational lines that survived this era to their American counterparts, they can be defined as quite extensive.

[edit] Europe

New Berlin MetroTram
Main article: Trams in Europe
In many European cities much tramway infrastructure was lost in the mid-20th century, though not always on the same scale as in other parts of the world such as North America. Most of Eastern Europe retained tramway systems until recent years but some cities are now reconsidering their transport priorities. In contrast, some Western European cities are rehabilitating, upgrading, expanding and reconstructing their old tramway lines. Many Western European towns and cities are also building new tramway lines.

[edit] North America

Streetcars in Toronto operate the largest such system in North America.
In North America trams are generally known as streetcars or trolleys; the term tram is more likely to be understood as a tourist trolley, an aerial tramway, or a people-mover.
In some North American cities, streetcar lines were largely torn up in the mid-20th century for a variety of financial, technological and social reasons. (See also the Great American Streetcar Scandal.) Exceptions include New Orleans, Tampa, Newark, Seattle, Philadelphia (with a much smaller network than once had existed), and San Francisco. American cities, such as Memphis, Tacoma, Washington, D.C., Portland, Seattle, and Detroit are beginning to rebuild or add streetcar systems. Pittsburgh kept most of its streetcar system serving the city and many suburbs until January 27, 1967, making it the longest-lasting large-network U.S. streetcar system. In the late 20th century, several cities installed light rail systems, in part along the same corridor as the old streetcars.
Toronto currently has the largest streetcar system in the Americas in terms of track length and ridership, operated by the Toronto Transit Commission. It is the only streetcar system existing in Canada, not including the light rail systems that some Canadian cities currently operate. Toronto's system uses Canadian Light Rail Vehicles and Articulated Light Rail Vehicles, after a history of using PCCs, Peter Witt cars, and horse-drawn carriages. The system is currently proposing to replace its current fleet with Bombardier's Flexity Outlook models, which is also used in some European tram systems. Streetcars once existed in Edmonton and Calgary, but both cities have since converted their systems to support light rail vehicles instead. Streetcars also once existed in Ottawa, Montreal, Kitchener and Hamilton. Some cities have restored their old streetcars and run them as a heritage feature for tourists, like the Vancouver Downtown Historic Railway.

[edit] Australia and New Zealand

A heritage H-Class model (foreground) and modern Flexity tram (background) in Glenelg, Adelaide
In Australasia, trams are used extensively only in Melbourne, and to a lesser extent, Adelaide, all other major cities having largely dismantled their networks by the 1970s. Sydney reintroduced its tram in 1997 as a modern system (Metro Light Rail), while Ballarat, Christchurch and Perth reintroduced their trams as heritage systems. Bendigo had a heritage system for a while which has recently been upgraded to a simple public transport system through an increase in frequency.
A distinctive feature of many Australasian trams was the early use of a lowered central section between bogies (wheel-sets). This was intended to make passenger access easier, by reducing the number of steps required to reach the inside of the vehicle. It is believed that the design first originated in Christchurch in the first decade of the 20th century. Cars with this design feature were frequently referred to as "drop-centres". Trams built since the 1970s have had conventional high or low floors.
The trams made by Boon & Co. of Christchurch, New Zealand in 1906–07 for use in Christchurch may have been the first with this feature; they were referred to as drop-centres or Boon cars. Trams for Christchurch and Wellington built in the 1920s with an enclosed section at each end and an open-sided middle section were also known as Boon cars, but did not have the drop-centre.

[edit] South America

Puerto Madero Tramway in Buenos Aires
Buenos Aires in Argentina had once one of the most extensive tramway networks in the world with over 857 km (535 mi) of track, most of it dismantled during the 1960s in favor of bus transportation. Now slowly coming back, the 2 km Puerto Madero Tramway running in the Puerto Madero district is spearheading the move with extensions to Retiro station and La Boca in the planning stages. Another line, the PreMetro line E2 system feeding the Line E of the Buenos Aires Subway has been operating for the past few years on the outskirts of Buenos Aires, and a unique leisure "Tren de la Costa", an artery that stretches for 15 kilometres by the River Plate, from Olivos to the village of Tigre has also been running in Buenos Aires.
Also in Argentina, in the city Mendoza, a new tramway line is in construction, the Metrotranvía of Mendoza, which will have a route of 12.5 km and will link five districts of the Greater Mendoza conurbation. The opening of the system is scheduled for 2011. Also in Medellín, Colombia, there is a tram line under construction and the opening schedule is for December 2011.[30]

PCC Streetcar Information

PCC streetcar

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This article's tone or style may not be appropriate for Wikipedia. Specific concerns may be found on the talk page. See Wikipedia's guide to writing better articles for suggestions. (March 2010)

PCC streetcar

Three PCCs on the San Francisco Municipal Railway's F-line. An example of one double-ended streetcar and two former SEPTA cars.

Interior of a PCC car
In service
1936–present
Manufacturer
Constructed
1936–1952
Scrapped
1950s–1998
Number built
5000
Capacity
52–61 Seats
Specifications
Car length
46–50.5 ft (14.0–15.4 m)
Maximum speed
50 mph (80 km/h)
Weight
35,000–42,000 lb (15,900–19,100 kg)
Acceleration
Variable, Automatic 1.5–4.75-mph/s
Deceleration
Service: Variable to 4.75 mph/s,
Emergency: 9.0 mph/s maximum
Traction system
4 x 55 hp (41 kW) motors, 43:6 (~7.17) gear ratio
600 V DC
Dynamic Service Braking; Friction for Final Stop, Park; Magnetic
The PCC (Presidents’ Conference Committee) streetcar (tram) design was first built in the United States in the 1930s. The design proved successful in its native country, and after World War II was licensed for use elsewhere in the world. The PCC car has proved to be a long-lasting icon of streetcar design, and PCC cars are still in service in various places around the world.

Contents

[edit] Origins

The PCC name comes from the design committee formed in 1929 representing the Presidents of various electric street railways. The Electric Railway Presidents’ Conference Committee, or ERPCC, was tasked with producing a new type of streetcar that would help fend off competition from buses and automobiles.[citation needed] The committee conducted extensive research, prepared a detailed research program, built and tested components, made necessary modifications, and produced a high-performance design that was commonly used in the following decades.[citation needed] The cars were popular because of their distinctive streamlined design and smooth acceleration and braking, sometimes quoted[by whom?] as soft ride. The design patents were held by a business called the Transit Research Corporation, who licensed features to various streetcar manufacturers.[citation needed]
It turned out that the PCC streetcar was a very good design. The standard car was 46 ft (14.0 m) long and 100 in (2.54 m) wide with later models 46.5 ft (14.2 m) long and 108 in (2.74 m) wide.[citation needed] Chicago, Detroit, Illinois Terminal, Pacific Electric, and San Francisco had longer cars, as long as 50.5 ft (15.4 m).[citation needed] Washington, D.C., had shorter cars (44 ft (13.4 m)) because of transfer table clearances.[citation needed] Many railways altered the car in various ways to fit their own needs, but most cars retained a standard appearance.
Although a participant in Committee meetings, trolley manufacturer J. G. Brill and Company brought a competitive design—the Brilliner—to market in 1938. With Raymond Loewy designed elements, very similar to the PCC look, the Brilliner attracted no large orders, serving most conspicuously with Atlantic City Transit. Fewer than 50 were sold.[1]
A significant contribution to the PCC design was Noise Reduction with extensive use of rubber in springs and other components to prevent rattle, vibration, and thus noise and to provide a level of comfort not known before.[citation needed] Wheel tires were mounted between rubber sandwiches and were thus electrically isolated so that shunts were used to complete ground. Resilient wheels were used on most PCC cars with later heftier cousins known as Super-Resilient.[2]
Gears were another source of considerable noise, solved by employing hypoid gears which are mounted at a right angle to the axle, where three of the six teeth constantly engaged the main gear, reducing play and noise. All movable truck parts employed rubber for noise reduction as well.[3] "Satisfactory Cushion Wheel of Vital Importance; Develop New Truck Design; Generous Use of Rubber" are headings within a paper that Chief Engineer Hirshfeld both presented and published.[4]
Pittsburgh Railways (PRCo) took delivery of PCC #100 in June 1936, the fourth order for a PCC car but the first PCC car delivered and the first in revenue service in the world.[5][6] Production continued in North America until the early 1950s, with 4978 units built; thousands more PCCs and direct descendants were produced in Europe through the 20th century. The cars were very sturdy and many lasted a long time; well into the 1970s the majority of surviving North American streetcar systems used PCC cars, the systems which closed often selling their cars secondhand to the surviving operators. A handful still remain in service alongside modern vehicles, though most of the PCC cars functional today are operated by museums and heritage railways.
The first order of 99 cars was built in 1936 for Brooklyn, New York, by the St. Louis Car Company.[citation needed] The second order built (27) was for Baltimore and the third order went to Chicago, all by St. Louis Car Company.[citation needed] Clark Equipment Company built only one PCC, #1000, and the only aluminum PCC at that;[citation needed] this car completed the 100-car order for Brooklyn.
Washington, DC, PCCs were unique[citation needed] because of conduit plows which collected current from a slot between the rails into which the plow dipped, contacting positive and negative rails under the street on either side. At the city limits were "plow pits", where the plow was dropped and removed, the trolley pole raised, and the car then continued on its way, utilizing overhead wire; the process was reversed in the opposite direction into Washington.
"The PCC car was not just another modular vehicle but the result of the only systems engineering approach to mass producing a rail car."[7] Research into passenger comfort resulting from vibrations, acceleration, lighting, heating and cooling, seat spacing, cushion height, space for arms, legs, standing passengers, economies of weight affecting maintenance, cost of power, reduced wear of components and track. Dimensions were established to fit the majority but could easily be changed for special situations. Windows were spaced to match seating.[8]
While some of the components in the PCC car had been used before—resilient wheels, magnetic braking, sealed gears, and modular design to name a few—the ERPCC redesigned, refined, and perfected many of these while developing new acceleration and braking controls and put them all in one package. The PCC is far more than a good design, it is an excellent design with modern transit rail vehicles essentially upgrading the design with the most recent technology.[citation needed]

[edit] Manufacturing

Spanish-built Fiat/PCC running in Madrid in 1969
Later European versions, like this model in Brussels, had a boxier shape.
PCC cars were initially built in the United States by the St. Louis Car Company (SLCCo) and Pullman Standard. Clark Equipment built the only aluminum-body PCC as well as all narrow gauge B1 trucks for Los Angeles, all the standard and wide gauge B2 trucks both air- and all-electric, and the B2B trucks used under PRCo 1725–1799 and Toronto 4500–4549.[citation needed] SLCCo built all B3 trucks, both standard and wide gauge.[citation needed] PCC cars for Canadian cities were assembled in Montreal, Quebec by Canadian Car and Foundry from bodies and trucks supplied by St. Louis Car.[9]
Westinghouse Electric, Westinghouse Air Brake, and General Electric supplied the electrical packages and brake components which were designed and built in cooperation with the ERPCC.[citation needed] The customer specified which equipment to install. Since Westinghouse was home based near Pittsburgh, PRCo ordered 75% of its PCC fleet with Westinghouse equipment, the balance with GE.[citation needed] Indeed, PCCs are often identified as either Westinghouse or GE.[clarification needed]
The PCC technology was exported to Europe, with La Brugeoise et Nivelles (now the BN division of Bombardier) of Bruges, Belgium, building several hundred streetcars that saw service in Brussels, Antwerp, Ghent, The Hague, Saint-Étienne, Marseille and Belgrade (the latter city buying vehicles initially used by the Belgian Vicinal railways).
The first European PCC cars were probably the ones developed in 1942 by Italian Fiat for the Madrid tramway system. Due to the progression of World War II, delivery of the units from Italy had to be stopped (Tranvías de Madrid pp. 228) and eventually 110 cars were built in Spain to the Fiat design, either by CAF (Compañía Auxiliar de Ferrocarriles) in Beasain or MMC (Material Móvil y Construcciones) in Zaragoza. These units worked very successfully in Madrid until May 1972 (Tranvías de Madrid pp. 177). CKD Tatra of Prague also bought a PCC license, and built thousands of PCC-based streetcars.[citation needed] Most successful[clarification needed] was type Tatra T3; 14,113 units were sold worldwide, mainly in former eastern bloc countries. ČKD had begun marketing to the rest of the world until 2000, when the company faced a bankruptcy and reorganization. The tram business was sold to Siemens SKV, who discontinued these products in favor of Siemens-designed models.
Another Eastern European company producing PCC cars (though not licensed) was Polish Konstal in Chorzów, Upper Silesia.[citation needed] The Konstal 13N type was a copy of the CKD Tatra T1[citation needed] (but with Belgian electric equipment) and is still used in Warsaw. Newer Konstal 105N types, produced since 1973, had the PCC electrical set. After many modernizations, the upgraded type Konstal 105Na and later versions based on it are still produced (though with modern electronic equipment) by Konstal, which was bought by Alstom in 1997. 105Na generation cars are still used in all tram-towns in Poland.[citation needed]
The last PCC streetcars built for any North American system were a batch of 25 for the San Francisco Municipal Railway, manufactured by the St. Louis Car Company and delivered in 1951-2.[10]

[edit] Performance

Westinghouse developed the XD-323 rotary accelerator with 99 points; it was installed in the first PRCo car, #100, and minor modifications allowed use in the last PCCs produced in North America for San Francisco in 1952. Resistance ribbons were mounted to each point around the outside edge of the accelerator. An arm rotating in the center had rollers on either end which cut out resistance alternately as it rotated approximately 180 degrees. This same accelerator was also used for dynamic braking; when the power pedal was released the accelerator sought optimum braking for the speed, which prevented a lag when the brake pedal was depressed. General Electric Developed a control system for PCC cars that mirrored the Westinghouse scheme in function, although not in simplicity or maintainability.[11] With the GE commutator motor controller operating by air pressure, it had to be redesigned with the advent of the All-Electric PCC. Acceleration was variable between 1.5- and 4.75-mph per second depending upon the depression of the power pedal with the accelerator advanced automatically by a low-voltage pilot motor. Service braking was also variable and the maximum dynamic application decreased speed by 4.75-mph/s; pressing the brake pedal into emergency also brought the friction and magnetic brakes into play providing a maximum deceleration of 9.0-mph/s. Compared to a maximum of 14 points on old time equipment, the PCC was considerably smoother.
Most PCCs employed three pedals with a dead man's switch to the left, brake in center, and power pedal on the right. Depressing the brake about half way and then releasing the deadman pedal put the PCC in "park". Lifting the deadman alone would apply all brakes, drop sand, and balance the doors so they could be pushed open easily. Chicago used "bicycle-type levers" for power and brake but converted some cars to two pedals.[12] (SLPS) used two pedals, both with heel interlocks. The right pedal is the brake; depressing this pedal about half way while lifting away from the heel applied "park". Once the brake is released the heel need not be engaged with the interlock (although a professional driver is to cover the brake at all times.) The left pedal applied the power and the heel interlock had to be engaged at all times since it was the deadman; only when the brake was in "park" could the deadman be disengaged.
SLPS is unique in that all 300 of their PCCs are All-Electric with the 1500s ordered in late 1939, the 1600s ordered late 1940s and the 1700s in January 1945. SLPS was the rolling laboratory for All-Electrics and what was learned here was applied to the post-WW2 All-Electric Demonstrator in the Fall of 1945.
From 1936 to 1945, PCC cars were 'Air-Electrics' with friction brakes, doors, and windshield wipers operated by air pressure. PRCo PCC 1600 of 1945 was the post WW2 All-Electric Demonstrator[13] which eliminated the air compressor and associated piping while incorporating such features as standee windows, a sloped windshield to eliminate night time glare, redesigned back end, forced-air ventilation, and other features. Dynamic brakes were the service brake on all PCCs; when almost stopped, friction brakes completed the stop and held the car in "park". Dynamic brakes slowed the "Air" cars to 3.0-mph at which point a lock-out relay allowed automatic application of air-applied friction brakes against each of the eight wheels. On All-Electric cars the dynamics were effective to 0.75-mph where the lockout relay then allowed a spring applied friction brake to engage a drum on each of the four motor drive shafts; this completed the stop and held the car in park. Drum brakes were released by an electric solenoid operating from low-voltage battery power; a power failure would prevent the drums from releasing which would prevent power application, a fail-safe feature. Drum brakes were quite popular and greatly reduced maintenance thus some "Air" cars were retrofitted with drums. Four magnetic brakes, one between the wheels on each side of each truck, applied additional braking for emergency stopping where all brakes were generally employed.
"These performances [acceleration and braking] enable the P.C.C. car to out-pace the average automobile which, in America, is of substantially higher performance than the typical British vehicle."[14]

[edit] Largest fleets

A PCC streetcar in operation on the Toronto Transit Commission's 509 Harbourfront line.
The following are 1983 figures (2008.09.13:)
  • St.-Petersburg, Russia (formerly Leningrad), had the largest fleet of PCCs in the world—over 2,000. At that time, older equipment was still needed to fill schedules.[15]
  • Moscow had over 1,600;
  • Kharkov had about 1,050;
  • A number of Russian cities had hundreds of PCCs.
  • Prague had over 1,130.
  • Warsaw had 945.
  • Chicago had 683 PCCs in 1948. Many of these cars were converted to CTA 6000 and 1-50 series rapid transit cars by 1958.[16] One is preserved at the Illinois Railway Museum in operating condition.[17]
  • Pittsburgh had 666 PCCs in 1949;
    • lost 11 to Homewood fire in May 1955;[18]
    • 609 in 1959;
    • 595 in 1960;
    • 457 in 1961.[16]

[edit] PCCs still in active service

[edit] North America

A Twin City Rapid Transit PCC streetcar in museum operation.
Muni PCCs #1158, #1008, #1168, and Osaka tram #151 in San Francisco's Marin Division. These cars will eventually be restored for the F-line.
San Francisco Municipal Railway #1061, a rebuilt PCC streetcar painted in honor of the Pacific Electric Railway, is seen in service on the F Market heritage line in December, 2004. This single-ended car was originally built for the City of Philadelphia in 1946. (Pacific Electric only operated double-ended PCCs.)
A PCC-II trolley on SEPTA's Route 15 in Philadelphia.
In North America, most PCC-based systems were dismantled in the post-war period in favor of bus-based transit networks. Of the rail transit systems that survived this period, most had replaced their PCCs with modern light rail vehicles (LRVs) by the early 1980s. A few sites have only recently concluded operation with PCCs:
  • The first PCC cars in Canada were operated by the Toronto Transit Commission (TTC) in 1937. By 1954 Toronto had the largest PCC fleet in the world, including many purchased second-hand from U.S. cities that abandoned streetcar service following the Second World War. Although it acquired new custom-designed streetcars in the late 1970s and 1980s, the TTC continued using PCCs in regular service until the mid-1990s, and retains two (#4500 and #4549) for charter purposes. These vehicles occasionally enter revenue service to mark special occasions. Recently they have been showcased on the 509 Harbourfront route on weekends during the summer. A number of different models of Toronto PCC cars are on display at the Ontario Electric Railway Historical Society museum, the Halton County Radial Railway, near Rockwood, Ontario. Several are in operating condition and rides are available to the public. Toronto sold their earlier PCCs to Alexandria, Egypt from 1966 to 1968. These cars remained in operation until 1984.
  • The unique Tandy Center Subway in Fort Worth, Texas, shut down in 2002. A shuttle between a mall and its parking lot, the system used a number of PCCs, but their exteriors were heavily modified in the 1970s, making them largely unrecognizable.
As of 2005, there are still a few places in North America where transit agencies employ PCCs in true revenue service (as opposed to short-run or intermittent heritage railway service). Of these, only one has been in service continuously since the PCC's glory days:
Not considered historic equipment, the PCC cars in use on the Mattapan-Ashmont line represent the oldest cars still in revenue service, originally built between 1943 and 1946. These cars are also the only air-electric PCCs still in regular service in North America. Several retired PCCs from Boston are now at the Seashore Trolley Museum.
Beginning in the late 1990s, several cities began to make use of historic PCCs to serve historic streetcar lines that combined aspects of tourist attractions and transit:
  • The F Market Line (historic streetcar service) in San Francisco, opened in 1995, runs along Market Street from The Castro to the Ferry Building, then along the Embarcadero north and west to Fisherman's Wharf. This line is run by a mixture of PCC cars built between 1946 and 1952, and earlier pre-PCC cars. (Although San Francisco had removed PCCs from revenue service when the city's light rail was transformed into the Muni Metro system in 1980, they had made occasional festival trips in the ensuing years before being returned to full-time service.). Car 1074 is painted in the livery of the Toronto Transportation Commission, but this car was never in the TTC roster.
  • The Kenosha Electric Streetcar in Kenosha, Wisconsin, has been operating five PCCs acquired from Toronto since 2000. The Kenosha Electric Streetcar is unique among modern PCC operations in that that PCCs had not run in the city before 2000—the original rail system was shut down in 1932 before any PCC cars had been built. One of its cars is still painted in its original TTC colours, while the rest have been re-decorated in the liveries of several U.S. cities including Pittsburgh, Johnstown, Chicago and Cincinnati.
  • SEPTA restored trolley service to the Route 15 Girard Avenue line in Philadelphia in September 2005 after a 15-year "temporary" suspension of trolley service in favor of diesel buses. The line uses restored and modernized (by the Brookville Manufacturing Company) PCC cars, known as PCC-II's, painted in their original green and cream Philadelphia Transit Company livery, rather than SEPTA's white with red and blue stripes. Modernization included all-new control systems, modern turn markers, HVAC system (which accounts for the noticeably larger roof enclosure), and ADA compliant wheelchair lifts. The line runs from Haddington to Port Richmond down the median of Girard Avenue. It crosses both the Broad Street Subway and the Market-Frankford Line, and stops at the Philadelphia Zoo, among other landmarks. SEPTA had originally planned to run modern Kawasaki trolleys along the line once service was restored, but a combination of economics and a desire to help revive the Girard Avenue corridor with a more "romantic" vehicle led to the agency restoring the old vehicles for about half the cost of new cars.[citation needed] SEPTA uses Kawasaki vehicles on the rest of its trolley lines, including the Subway-Surface Green Line linking West Philadelphia with Center City and its 69th Street Terminal with the western suburbs of Media and Sharon Hill via the Media-Sharon Hill Line.
As many cities contemplate new transit projects, PCC-based streetcar lines are an attractive option as they are relatively low cost and can serve as a tourist attraction in and of themselves, especially on routes through historic city centers.

[edit] Europe

Czech-built Tatra T3 PCC cars are still common in eastern Europe.
Pre-war tram networks remain largely intact in a number of European cities, and many still use PCCs as part or all of their rolling stock. Late-model PCCs remain in use in Belgium. The vehicles used in Antwerp and Ghent are metre-gauge, while those used in Brussels are standard-gauge. One of the peculiarities of the four-axle Brussels PCC vehicles is that some of them have been equipped with bogies and electric motors acquired second-hand in the United States from decommissioned streetcars from Kansas City, Missouri, and Johnstown, Pennsylvania. The last of the originally 171 four-axle class 7000 PCC cars in Brussels were withdrawn on February 12, 2010, with the articulated PCCs (130 class 7700 six-axle cars and 60 class 7900 eight-axle cars) remaining in service.
The tram system of Sofia, Bulgaria has 16 lines totaling 221 km served by 190 trams, some of which are Tatra PCCs. In Romania, Bucharest's extensive tramway network features a large fleet of Tatra T4R PCCs.
Several tramways in the Czech Republic and Slovakia still use Tatra PCC cars, while many in Poland still operate Konstal PCCs. Some in the former East Germany also still use them, but many have been extensively modified.
Gothenburg tram types M25, M28 and M29, delivered between 1958 and 1967 resemble the PCC cars in appearance only, since they are quite different technically.
German manufacturer DUEWAG produced a large number of GT6 and GT8 Streetcars for many German and European cities after 1951. Those cars were basically a modernized version of the PCC car, adapted to the specific requirements of European cities.[21]

[edit] Africa

Some PCC trams are still in use in Cairo, Egypt suburban systems, see Trams in Egypt.

[edit] Latin America

PCC cars were also exported to Latin America, although not in great numbers, to Mexico and Buenos Aires particularly, in Buenos Aires they ran through exclusive right of ways on the suburban Urquiza Line for a while, these were modified at the ends to operate in two, three or four-sectioned articulated formations like most modern LRVs.[22] See List of town tramway systems in Argentina

[edit] PCCs in art and popular culture

MBTA PCC #3254 leaving the Ashmont Station bound for Mattapan, on the Ashmont-Mattapan High Speed Line.
Summertime Streetcar in Toronto's Eglinton West station
Although few cities have run PCCs since 1960, they are still quite identifiable as streetcars and, because of their 1930s-era deco, streamlined design, quite aesthetically pleasing. PCC streetcars were featured prominently in a Dockers ad campaign in which two PCC cars operating on San Francisco's F Line pass each other, and a man and woman, after making eye contact, both jump out of their seats, miss the streetcar on the other track only to find that they are united as the cars pull away. Clint Eastwood's character, Harry Callahan, of SFPD, rode on such a streetcar (livery was typical MUNI green and cream of the early 1970s) on the K-line in a brief scene in Dirty Harry to the Forest Hill Station in San Francisco while attempting to deliver ransom money to a kidnapper.
In late 2007 and early 2008, a PCC car is seen passing by in the background of a Restylane TV commercial.
Two enamel murals depicting PCC streetcars in motion are displayed facing each other on the platform walls of Eglinton West subway station in Toronto, although they had never served the station.
A Toronto Transit Commission PCC car can be seen in the downtown scenes of the movie A Christmas Story, and also when Ralphie and his family are choosing a Christmas tree.

[edit] See also

[edit] References

  1. ^ Brill, Debra (2001). History of the J. G. Brill Company. Indiana University Press. pp. 202–205. ISBN 0253339499. 
  2. ^ Carlson, S.P.; Schneider, F.W. (1980). PCC: The Car That Fought Back. Interurban Press. pp. 114–116. ISBN 0-916374-41-6. 
  3. ^ Carlson & Schneider (1980), pp.117–119.
  4. ^ C.F.Hirshfeld, Ch.Engr., PCC; (October 1933) "Electric Transit and Bus Journal", pp.321–325, 331.
  5. ^ Carlson & Schneider (1980), pp. 76, 91 (top photo caption).
  6. ^ Andrew D. Young, Eugene F. Provenzo (1978). The history of the St. Louis Car Company, "Quality Shops". Howell-North Books. p. 196 (photo caption). ISBN 0831071141. 
  7. ^ Carlson & Schneider (1980), p. 59.
  8. ^ Carlson & Schneider (1980), pp. 59–61.
  9. ^ Carlson, S.P.; Schneider, F.W. (1983). PCC: From Coast to Coast. Interurban Press. p. 235. ISBN 0-916374-57-2. 
  10. ^ Kashin, S.; Demoro, H. (1986). An American Original: The PCC Car, p. 79. Glendale (CA): Interurban Press, ISBN 0-916374-73-4.
  11. ^ Carlson & Schneider (1980), p. 149.
  12. ^ St. Louis Public Service Co.
  13. ^ Carlson & Schneider (1980), pp. 98–100.
  14. ^ H.G. McClean, B.Sc, M.I.E.E., M.I.Loco.E.; December 14, 1945, "Passenger Transport Journal:" The American P.C.C. Car, p. 348.
  15. ^ Carlson, S.P.; Schneider, F.W. (1983). PCC From Coast To Coast. Interurban Press. p. 279 (top photo caption). ISBN 0-916374-57-2. 
  16. ^ a b c d Dr. Harold E. Cox (1963) PCC Cars of North America.
  17. ^ IRM Roster Page for CTA 4391
  18. ^ "$400,000 Flash Fire Destroys Homewood Car Barn, 14 Trolleys". The Pittsburgh Press. May 19, 1955. http://news.google.com/newspapers?id=_XobAAAAIBAJ&sjid=3k0EAAAAIBAJ&pg=3013,765597&dq=homewood+fire&hl=en. Retrieved December 8, 2010. 
  19. ^ Toronto's 'Boomer' PCCs
  20. ^ Philadephia Trolley Track
  21. ^ DE:WP: Duewag-Einheitswagen (Duewag Uniform Car)
  22. ^ Coches Eléctricos para servicios urbanos de la Línea Urquiza (Spanish) includes photo gallery
  • (Spanish) López Bustos, Carlos, Tranvías de Madrid, Aldaba Ediciones, Madrid 1986, ISBN 84-86629-00-4

[edit] External links

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